US20040173262A1 - Flow-through diaphragm for a fuel vapor pressure management apparatus - Google Patents

Flow-through diaphragm for a fuel vapor pressure management apparatus Download PDF

Info

Publication number
US20040173262A1
US20040173262A1 US10/794,083 US79408304A US2004173262A1 US 20040173262 A1 US20040173262 A1 US 20040173262A1 US 79408304 A US79408304 A US 79408304A US 2004173262 A1 US2004173262 A1 US 2004173262A1
Authority
US
United States
Prior art keywords
diaphragm
fuel vapor
management apparatus
vapor pressure
pressure management
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
US10/794,083
Other versions
US6953027B2 (en
Inventor
Andre Veinotte
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Continental Tire Canada Inc
Continental Automotive Systems Inc
Original Assignee
Siemens VDO Automotive Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Siemens VDO Automotive Corp filed Critical Siemens VDO Automotive Corp
Priority to US10/794,083 priority Critical patent/US6953027B2/en
Assigned to SIEMENS VDO AUTOMOTIVE CORPORATION reassignment SIEMENS VDO AUTOMOTIVE CORPORATION ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: VEINOTTE, ANDRE
Publication of US20040173262A1 publication Critical patent/US20040173262A1/en
Assigned to SIEMENS VDO AUTOMOTIVE INC. reassignment SIEMENS VDO AUTOMOTIVE INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: VEINOTTE, ANDRE
Application granted granted Critical
Publication of US6953027B2 publication Critical patent/US6953027B2/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Images

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B67OPENING, CLOSING OR CLEANING BOTTLES, JARS OR SIMILAR CONTAINERS; LIQUID HANDLING
    • B67DDISPENSING, DELIVERING OR TRANSFERRING LIQUIDS, NOT OTHERWISE PROVIDED FOR
    • B67D7/00Apparatus or devices for transferring liquids from bulk storage containers or reservoirs into vehicles or into portable containers, e.g. for retail sale purposes
    • B67D7/04Apparatus or devices for transferring liquids from bulk storage containers or reservoirs into vehicles or into portable containers, e.g. for retail sale purposes for transferring fuels, lubricants or mixed fuels and lubricants
    • B67D7/0476Vapour recovery systems
    • B67D7/0478Vapour recovery systems constructional features or components
    • B67D7/048Vapour flow control means, e.g. valves, pumps
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K17/00Safety valves; Equalising valves, e.g. pressure relief valves
    • F16K17/18Safety valves; Equalising valves, e.g. pressure relief valves opening on surplus pressure on either side
    • F16K17/19Equalising valves predominantly for tanks
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K15/00Check valves
    • F16K15/14Check valves with flexible valve members
    • F16K15/144Check valves with flexible valve members the closure elements being fixed along all or a part of their periphery
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T137/00Fluid handling
    • Y10T137/7722Line condition change responsive valves
    • Y10T137/7771Bi-directional flow valves
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T137/00Fluid handling
    • Y10T137/7722Line condition change responsive valves
    • Y10T137/7771Bi-directional flow valves
    • Y10T137/778Axes of ports co-axial
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T137/00Fluid handling
    • Y10T137/7722Line condition change responsive valves
    • Y10T137/7837Direct response valves [i.e., check valve type]
    • Y10T137/7879Resilient material valve
    • Y10T137/7888With valve member flexing about securement

Definitions

  • a fuel vapor pressure management apparatus that manages pressure and detects leaks in a fuel system.
  • a fuel vapor pressure management apparatus that vents positive pressure, vents excess negative pressure, and uses evaporative natural vacuum to perform a leak diagnostic.
  • Conventional fuel systems for vehicles with internal combustion engines can include a canister that accumulates fuel vapor from a headspace of a fuel tank. If there is a leak in the fuel tank, the canister, or any other component of the fuel system, fuel vapor could escape through the leak and be released into the atmosphere instead of being accumulated in the canister.
  • Various government regulatory agencies e.g., the U.S. Environmental Protection Agency and the Air Resources Board of the California Environmental Protection Agency, have promulgated standards related to limiting fuel vapor releases into the atmosphere. Thus, it is believed that there is a need to avoid releasing fuel vapors into the atmosphere, and to provide an apparatus and a method for performing a leak diagnostic, so as to comply with the relevant standards.
  • the present invention provides a fuel vapor pressure management apparatus that includes a housing and a pressure operable device.
  • the housing defines an interior chamber, and includes first and second ports communicating with the interior chamber.
  • the pressure operable device includes a diaphragm that separates the interior chamber into a first portion in fluid communication with the first port and a second portion in fluid communication with the second port.
  • the diaphragm includes a central portion that is movable along an axis, a peripheral portion that is fixed with respect to the housing, and an intermediate portion that couples the central and peripheral portions.
  • a first arrangement of the pressure operable device occurs when there is a first negative pressure level at the first port relative to the second port and the diaphragm is in a nearly undeformed configuration.
  • a second arrangement of the pressure operable device permits a first fluid flow from the second port to the first port when the diaphragm is in a first deformed configuration.
  • a third arrangement of the pressure operable device permits a second fluid flow from the first port to the second port when the diaphragm is in a second deformed configuration.
  • the present invention also provides a fuel vapor pressure management apparatus for a fuel system that supplies fuel to an internal combustion engine.
  • the fuel vapor pressure management apparatus performs leak detection on a headspace of the fuel system, performs excess negative pressure relief of the headspace, and performs excess positive pressure relief of the headspace.
  • the fuel vapor pressure management apparatus includes a diaphragm that is deformable between a nearly undeformed configuration that is associated with performing leak detection, a first deformed configuration that is associated with performing excess negative pressure relief, and a second deformed configuration that is associated with performing excess positive pressure relief.
  • a first fluid flow through the diaphragm occurs when the diaphragm is in the first deformed configuration.
  • a second fluid flow through the diaphragm occurs when the diaphragm is in the second deformed configuration, and the second fluid flow is opposite to the first fluid flow. And the diaphragm in the nearly undeformed configuration prevents fluid flow through the fuel vapor pressure management apparatus.
  • the present invention further provides a diaphragm that is deformable between a nearly undeformed configuration, a first deformed configuration, and a second deformed configuration.
  • the diaphragm includes a central portion, a peripheral portion, and an intermediate portion that couples the central and peripheral portions.
  • the intermediate portion includes a convolute including a crest that couples first and second sidewalls, a first root section that couples the first sidewall and the central portion of the diaphragm, a second root section that couples the second sidewall and the peripheral portion of the diaphragm, and an opening that penetrates at least one of the crest and the first and second sidewalls.
  • the second root section sealingly engages the first root section in the nearly undeformed configuration of the diaphragm, and the second root section disengages the first root section in the first and second deformed configurations of the diaphragm.
  • a first fluid flow passes through the opening in the first deformed configuration, and a second fluid flow passes through the opening in the second deformed configuration.
  • FIG. 1 is a schematic illustration of a fuel system that includes a fuel vapor pressure management apparatus in accordance with the detailed description of the preferred embodiment.
  • FIG. 2 is a schematic illustration of the fuel vapor pressure management apparatus illustrated in FIG. 1.
  • the fuel vapor pressure management apparatus is in an arrangement for performing leak detection.
  • FIG. 3 is a schematic illustration of the fuel vapor pressure management apparatus illustrated in FIG. 1.
  • the fuel vapor pressure management apparatus is in an arrangement for relieving excess negative pressure.
  • FIG. 4 is a schematic illustration of the fuel vapor pressure management apparatus illustrated in FIG. 1.
  • the fuel vapor pressure management apparatus is in an arrangement for blowing-off positive pressure.
  • FIG. 5 is a detail view of the diaphragm of the fuel vapor pressure management apparatus in accordance with the detailed description of the preferred embodiment.
  • Atmosphere generally refers to the gaseous envelope surrounding the Earth
  • atmospheric generally refers to a characteristic of this envelope.
  • pressure is measured relative to the atmospheric pressure.
  • positive pressure refers to pressure greater than the atmospheric pressure
  • negative pressure refers to pressure less than the atmospheric pressure.
  • headspace refers to the variable volume within an enclosure, e.g. a fuel tank, that is above the surface of the liquid, e.g., fuel, in the enclosure.
  • a fuel tank for volatile fuels, e.g., gasoline
  • vapors from the volatile fuel may be present in the headspace of the fuel tank.
  • a fuel system 10 e.g., for an engine (not shown), includes a fuel tank 12 , a vacuum source 14 such as an intake manifold of the engine, a purge valve 16 , a fuel vapor collection canister 18 , e.g., a charcoal canister, and a fuel vapor pressure management apparatus 20 .
  • the fuel vapor pressure management apparatus 20 performs a plurality of functions that include signaling 22 that a first predetermined pressure (vacuum) level exists (see FIG. 2), “vacuum relief” or relieving negative pressure 24 below the first predetermined pressure level (see FIG. 3), and “pressure blow-off” or relieving positive pressure 26 above a second pressure level (see FIG. 4).
  • volatile liquid fuels e.g., gasoline
  • can evaporate under certain conditions e.g., rising atmospheric temperature, thereby generating fuel vapor.
  • a vacuum is naturally created by cooling the fuel vapor and air, such as in the headspace of the fuel tank 12 and in the fuel vapor collection canister 18 .
  • the existence of a vacuum at the first predetermined pressure level indicates that the integrity of the fuel system 10 is satisfactory.
  • signaling 22 is used to indicate that there are no appreciable leaks of the fuel system 10 .
  • the vacuum relief 24 at a pressure level below the first predetermined pressure level protects the fuel tank 12 , e.g., can prevent structural distortion as a result of stress caused by vacuum in the fuel system 10 .
  • the pressure blow-off 26 allows venting of excess pressure, which may be due to fuel evaporation that can occur after the engine is turned-off, and thereby expedite the occurrence of vacuum generation that subsequently occurs during cooling.
  • the pressure blow-off 26 allows air within the fuel system 10 to be released while fuel vapor is retained in the fuel vapor collection canister 18 .
  • the pressure blow-off 26 allows air to exit the fuel tank 12 at a high rate of flow.
  • a leak detection diagnostic can be performed on fuel tanks of all sizes. This advantage is significant in that many previous systems for detecting leaks were not effective with known large volume fuel tanks, e.g., 100 gallons or more.
  • the fuel vapor pressure management apparatus 20 is compatible with a number of different types of the purge valves, including digital and proportional purge valves.
  • the fuel vapor pressure management apparatus 20 occupies a small volume, e.g., no more than 240 cubic centimeters. This advantage is significant in that many previous systems for detecting leaks were large and difficult to position in the confined spaces that are available under a vehicle's hood and body.
  • a preferred embodiment of the fuel vapor pressure management apparatus 20 includes a housing 30 that can be directly mounted to the body of the fuel vapor collection canister 18 , such as by a bayonet style connection.
  • a bayonet style connection there can be different styles of connection between the fuel vapor pressure management apparatus 20 and the body of the fuel vapor collection canister 18 .
  • different attachments include a threaded attachment, and an interlocking telescopic attachment.
  • the fuel vapor collection canister 18 and the housing 30 can be bonded together (e.g., using an adhesive), or the body of the fuel vapor collection canister 18 and the housing 30 can be interconnected via an intermediate member such as a rigid pipe or a flexible hose.
  • the housing 30 defines an interior chamber 31 and includes a first port 36 and a second port 38 .
  • the first port 36 provides fluid communication between the fuel vapor collection canister 18 and the interior chamber 31 .
  • the second port 38 provides fluid communication, e.g., venting, between the interior chamber 31 and the atmosphere.
  • a filter (not shown) can be interposed between the second port 38 and the atmosphere for reducing contaminants that could be drawn into the fuel vapor pressure management apparatus 20 during the vacuum relief 24 or during operation of the purge valve 16 .
  • An advantage of the fuel vapor pressure management apparatus 20 is its compact size.
  • the volume occupied by the fuel vapor pressure management apparatus 20 , including the interior chamber 31 is less than many other known leak detection devices, which generally occupy more than 240 cubic centimeters. That is to say, the fuel vapor pressure management apparatus 20 , from the first port 36 to the second port 38 and including the interior chamber 31 , occupies less than 240 cubic centimeters. In particular, the fuel vapor pressure management apparatus 20 occupies a volume of less than 100 cubic centimeters. This size reduction over many known leak detection devices is significant given the limited availability of space in contemporary automobiles.
  • a pressure operable device 40 can separate the interior chamber 31 into a first portion 31 a and a second portion 31 b.
  • the first portion 31 a is in fluid communication with the fuel vapor collection canister 18 through the first port 36
  • the second portion 31 b is in fluid communication with the atmosphere through the second port 38 .
  • the pressure operable device 40 includes a diaphragm 50 and a resilient element 70 .
  • the diaphragm 50 prevents fluid communication between the first and second ports 36 , 38 (FIG. 2).
  • the diaphragm 50 permits fluid flow from the second port 38 to the first port 36 (FIG. 3).
  • the diaphragm 50 permits fluid flow from the first port 36 to the second port 38 (FIG. 4).
  • the pressure operable device 40 may be considered to constitute a bi-directional check valve. That is to say, under a first set of conditions, the pressure operable device 40 permits fluid flow along a path in one direction, e.g., from the second port 38 to the first port 36 , and under a second set of conditions, the same pressure operable device 40 permits fluid flow along the same path in the opposite direction, e.g., from the first port 36 to the second port 38 .
  • Operation of the pressure operable device 40 is dependent on a pressure differential between the first and second ports 36 , 38 .
  • all operations of the pressure operable device 40 are controlled by fluid pressure signals that act on one side, e.g., the first port 36 side, of the pressure operable device 40 .
  • the diaphragm 50 includes a central portion 52 movable along an axis A, a peripheral portion 58 fixed with respect to the housing 30 , and an intermediate portion 60 coupling the central and peripheral portions 52 , 58 .
  • the central portion 52 may be made of any metal (e.g., aluminum), polymer (e.g., nylon), or other material or combination of materials that is impervious to fuel vapor, is low density, is substantially rigid.
  • the central portion 52 may also include a projection 54 and a seat 56 .
  • the projection 54 performs several functions, including cooperating with a portion of the housing 30 a to limit movement of the diaphragm 50 along the axis A.
  • the seat 56 may cooperatively engage the resilient element 70 .
  • the peripheral portion 58 which may include an enlarged bead 58 a, is secured to the housing 30 , and may be secured between and seal two parts of the housing 30 .
  • the intermediate portion 60 of the diaphragm 50 can be made of any material that is sufficiently elastic to permit many cycles of flexing between undeformed and deformed configurations.
  • the intermediate portion 60 is molded from rubber or a polymer, e.g., nitrites or fluorosilicones.
  • the seal has a stiffness of approximately 50 durometer (Shore A), and is self-lubricating or has an anti-friction coating, e.g., polytetrafluoroethylene.
  • the diaphragm 50 is made of Santoprene 123-40.
  • the diaphragm 50 may be formed by molding the peripheral and intermediate portions 54 , 56 onto the central portion 52 .
  • the intermediate portion 60 of the diaphragm 50 can include a convolute 62 including a crest portion 62 a that couples a first sidewall portion 62 b and a second sidewall portion 62 c.
  • a first root section 64 couples the first sidewall portion 62 b and the central portion 52 of the diaphragm 50 .
  • a second root section 66 couples the second sidewall portion 62 c and the peripheral portion 58 of the diaphragm 50 .
  • the first and second root sections 64 , 66 sealingly engage one another.
  • at least one of the first and second root sections 64 , 66 may include mating features (a rim 66 a is shown in FIG. 5) to enhance the sealing engagement.
  • An opening 68 penetrates at least one of the crest 62 a and the first and second sidewalls 62 b , 62 c , and provides a fluid passage through the diaphragm 50 .
  • fluid flow through the opening 68 in the diaphragm 50 is blocked by the sealing engagement of the first and second root sections 64 , 66 .
  • fluid can flow through the opening 68 and between the disengaged first and second roots sections 64 , 66 .
  • vacuum in the fuel vapor collection canister 18 relative to atmospheric pressure causes deformation of the convolute 62 such that the crest 62 a is displaced toward the fuel vapor collection canister 18 and the first and second sidewalls 62 b , 62 c are drawn apart from one another. Consequently, a first fluid flow occurs from the second port 38 , between the disengaged first and second root sections 64 , 66 , through the opening 68 , and to the first port 36 .
  • the opening 68 includes a plurality of apertures 68 a that are uniformly distributed around the convolute 62 .
  • the resilient element 70 biases the central portion 52 of the diaphragm 50 towards the housing portion 30 a.
  • the resilient element 70 can be a compression coil spring that is disposed between the diaphragm 50 and the housing 30 . Preferably, such a coil spring is centered about the axis A.
  • Different embodiments of the resilient element 70 can include more than one coil spring, a leaf spring, or an elastic block.
  • the different embodiments can also include various materials, e.g., metals or polymers.
  • the resilient element 70 can be disposed differently, e.g., a tension spring disposed between the housing part 30 a and the diaphragm 50 .
  • the construction of the resilient element 70 in particular the spring rate and length of the resilient member, can be provided so as to set the value of the pressure level at which the vacuum relief 24 occurs.
  • a calibrator 72 disposed between the resilient element 70 and the housing 30 can tune the biasing force provided by the resilient element 70 .
  • a seat 74 receiving the resilient element 70 can be displaced relative to the housing 30 by a threaded adjuster 76 .
  • the diaphragm 50 and the resilient element 70 are the only operating components for the fuel vapor pressure management apparatus 20 .
  • the diaphragm 50 and the resilient element 70 are the only operating components for the fuel vapor pressure management apparatus 20 .
  • a switch 80 can perform the signaling 22 .
  • movement of the diaphragm 50 along the axis A actuates the switch 80 .
  • the switch 80 can be fixed with respect to the housing portion 30 a, and movement of the diaphragm 50 closes or opens an electrical circuit in which the switch 80 is connected.
  • the switch 80 is selected so as to require a minimal actuation force, e.g., 50 grams or less.
  • the resilient element 70 can apply a preload force to the switch 80 .
  • Different embodiments of the switch 80 can include a dome switch or other contact type switches, a load cell transducer or other type of analog or digital transducers, magnetic proximity switches, piezoelectric contact sensors, or any other type of device capable of signaling that the diaphragm 50 has moved to a prescribed position or that the diaphragm 50 is exerting a prescribed force on the switch 80 .
  • the signaling 22 occurs when vacuum at the first predetermined pressure level is present at the first port 36 .
  • the first and second root sections 64 , 66 cooperatively engage one another to prevent fluid communication between the first and second ports 36 , 38 .
  • the first predetermined pressure level e.g., a fraction of one inch of water vacuum relative to the atmospheric pressure
  • displacement of the diaphragm 50 will assume a nearly undeformed configuration, e.g., the diaphragm 50 retains substantially the same shape and all but the peripheral portion 58 may be displaced up to several thousandths of an inch in order to actuate the switch 80 , thereby opening or closing an electrical circuit that can be monitored by an electronic control unit 82 .
  • the elasticity of the diaphragm 50 causes the diaphragm 50 to return to its nominal configuration, e.g., unmoved and undeformed by relative pressure differentials between the first and second ports 36 , 38 , thereby releasing the actuating force and resetting the switch 80 .
  • At least four advantages are achieved in accordance with the operations performed by the fuel vapor pressure management apparatus 20 .
  • Second providing relief for vacuum below the first predetermined pressure level, and providing relief for positive pressure above the second predetermined pressure level.
  • Third, vacuum relief provides fail-safe purging of the canister 18 .
  • the relieving pressure 26 regulates the pressure in the fuel tank 12 during any situation in which the engine is turned off, thereby limiting the amount of positive pressure in the fuel tank 12 and allowing the cool-down vacuum effect to occur sooner.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Supplying Secondary Fuel Or The Like To Fuel, Air Or Fuel-Air Mixtures (AREA)

Abstract

A fuel vapor pressure management apparatus for a fuel system performs leak detection on a headspace of the fuel system, performs excess negative pressure relief of the headspace, and performs excess positive pressure relief of the headspace. The fuel vapor pressure management apparatus includes a diaphragm that is deformable between a nearly undeformed configuration that is associated with performing leak detection, a first deformed configuration that is associated with performing excess negative pressure relief, and a second deformed configuration that is associated with performing excess positive pressure relief. A first fluid flow through the diaphragm occurs when the diaphragm is in the first deformed configuration. A second fluid flow through the diaphragm occurs when the diaphragm is in the second deformed configuration, and the second fluid flow is opposite to the first fluid flow. And the diaphragm in the nearly undeformed configuration prevents fluid flow through the fuel vapor pressure management apparatus.

Description

    CROSS REFERENCE TO RELATED APPLICATIONS
  • This application claims the benefit of the earlier filing date of U.S. Provisional Application No. 60/453,021, filed 7 Mar. 2003, which is incorporated by reference herein in its entirety. [0001]
  • Related co-pending U.S. Utility Application No. 10/______,______, titled “Fuel System and Method for Managing Pressure With a Flow-Through Diaphragm,” filed concurrently herewith, is incorporated by reference herein in its entirety.[0002]
  • FIELD OF THE INVENTION
  • A fuel vapor pressure management apparatus that manages pressure and detects leaks in a fuel system. In particular, a fuel vapor pressure management apparatus that vents positive pressure, vents excess negative pressure, and uses evaporative natural vacuum to perform a leak diagnostic. [0003]
  • BACKGROUND OF THE INVENTION
  • Conventional fuel systems for vehicles with internal combustion engines can include a canister that accumulates fuel vapor from a headspace of a fuel tank. If there is a leak in the fuel tank, the canister, or any other component of the fuel system, fuel vapor could escape through the leak and be released into the atmosphere instead of being accumulated in the canister. Various government regulatory agencies, e.g., the U.S. Environmental Protection Agency and the Air Resources Board of the California Environmental Protection Agency, have promulgated standards related to limiting fuel vapor releases into the atmosphere. Thus, it is believed that there is a need to avoid releasing fuel vapors into the atmosphere, and to provide an apparatus and a method for performing a leak diagnostic, so as to comply with the relevant standards. [0004]
  • In such conventional fuel systems, excess fuel vapor can accumulate immediately after engine shutdown, thereby creating a positive pressure in the fuel vapor pressure management system. Excess negative pressure in closed fuel systems can occur under some operating and atmospheric conditions, thereby causing stress on components of these fuel systems. Thus, it is believed that there is a need to vent, or “blow-off,” the positive pressure, and to vent, or “relieve,” the excess negative pressure. Similarly, it is also believed to be desirable to relieve excess positive pressure that can occur during tank refueling. Thus, it is believed that there is a need to allow air, but not fuel vapor, to exit the tank at high flow rates during tank refueling. This is commonly referred to as onboard refueling vapor recovery (ORVR). [0005]
  • SUMMARY OF THE INVENTION
  • The present invention provides a fuel vapor pressure management apparatus that includes a housing and a pressure operable device. The housing defines an interior chamber, and includes first and second ports communicating with the interior chamber. The pressure operable device includes a diaphragm that separates the interior chamber into a first portion in fluid communication with the first port and a second portion in fluid communication with the second port. The diaphragm includes a central portion that is movable along an axis, a peripheral portion that is fixed with respect to the housing, and an intermediate portion that couples the central and peripheral portions. A first arrangement of the pressure operable device occurs when there is a first negative pressure level at the first port relative to the second port and the diaphragm is in a nearly undeformed configuration. A second arrangement of the pressure operable device permits a first fluid flow from the second port to the first port when the diaphragm is in a first deformed configuration. And a third arrangement of the pressure operable device permits a second fluid flow from the first port to the second port when the diaphragm is in a second deformed configuration. [0006]
  • The present invention also provides a fuel vapor pressure management apparatus for a fuel system that supplies fuel to an internal combustion engine. The fuel vapor pressure management apparatus performs leak detection on a headspace of the fuel system, performs excess negative pressure relief of the headspace, and performs excess positive pressure relief of the headspace. The fuel vapor pressure management apparatus includes a diaphragm that is deformable between a nearly undeformed configuration that is associated with performing leak detection, a first deformed configuration that is associated with performing excess negative pressure relief, and a second deformed configuration that is associated with performing excess positive pressure relief. A first fluid flow through the diaphragm occurs when the diaphragm is in the first deformed configuration. A second fluid flow through the diaphragm occurs when the diaphragm is in the second deformed configuration, and the second fluid flow is opposite to the first fluid flow. And the diaphragm in the nearly undeformed configuration prevents fluid flow through the fuel vapor pressure management apparatus. [0007]
  • The present invention further provides a diaphragm that is deformable between a nearly undeformed configuration, a first deformed configuration, and a second deformed configuration. The diaphragm includes a central portion, a peripheral portion, and an intermediate portion that couples the central and peripheral portions. The intermediate portion includes a convolute including a crest that couples first and second sidewalls, a first root section that couples the first sidewall and the central portion of the diaphragm, a second root section that couples the second sidewall and the peripheral portion of the diaphragm, and an opening that penetrates at least one of the crest and the first and second sidewalls. The second root section sealingly engages the first root section in the nearly undeformed configuration of the diaphragm, and the second root section disengages the first root section in the first and second deformed configurations of the diaphragm. A first fluid flow passes through the opening in the first deformed configuration, and a second fluid flow passes through the opening in the second deformed configuration.[0008]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The accompanying drawings, which are incorporated herein and constitute part of this specification, illustrate presently preferred embodiments of the invention, and, together with the general description given above and the detailed description given below, serve to explain features of the invention. [0009]
  • FIG. 1 is a schematic illustration of a fuel system that includes a fuel vapor pressure management apparatus in accordance with the detailed description of the preferred embodiment. [0010]
  • FIG. 2 is a schematic illustration of the fuel vapor pressure management apparatus illustrated in FIG. 1. The fuel vapor pressure management apparatus is in an arrangement for performing leak detection. [0011]
  • FIG. 3 is a schematic illustration of the fuel vapor pressure management apparatus illustrated in FIG. 1. The fuel vapor pressure management apparatus is in an arrangement for relieving excess negative pressure. [0012]
  • FIG. 4 is a schematic illustration of the fuel vapor pressure management apparatus illustrated in FIG. 1. The fuel vapor pressure management apparatus is in an arrangement for blowing-off positive pressure. [0013]
  • FIG. 5 is a detail view of the diaphragm of the fuel vapor pressure management apparatus in accordance with the detailed description of the preferred embodiment.[0014]
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
  • As it is used in this description, “atmosphere” generally refers to the gaseous envelope surrounding the Earth, and “atmospheric” generally refers to a characteristic of this envelope. [0015]
  • As it is used in this description, “pressure” is measured relative to the atmospheric pressure. Thus, positive pressure refers to pressure greater than the atmospheric pressure and negative pressure, or “vacuum,” refers to pressure less than the atmospheric pressure. [0016]
  • Also, as it is used in this description, “headspace” refers to the variable volume within an enclosure, e.g. a fuel tank, that is above the surface of the liquid, e.g., fuel, in the enclosure. In the case of a fuel tank for volatile fuels, e.g., gasoline, vapors from the volatile fuel may be present in the headspace of the fuel tank. [0017]
  • Referring to FIG. 1, a [0018] fuel system 10, e.g., for an engine (not shown), includes a fuel tank 12, a vacuum source 14 such as an intake manifold of the engine, a purge valve 16, a fuel vapor collection canister 18, e.g., a charcoal canister, and a fuel vapor pressure management apparatus 20.
  • The fuel vapor [0019] pressure management apparatus 20 performs a plurality of functions that include signaling 22 that a first predetermined pressure (vacuum) level exists (see FIG. 2), “vacuum relief” or relieving negative pressure 24 below the first predetermined pressure level (see FIG. 3), and “pressure blow-off” or relieving positive pressure 26 above a second pressure level (see FIG. 4).
  • It is understood that volatile liquid fuels, e.g., gasoline, can evaporate under certain conditions, e.g., rising atmospheric temperature, thereby generating fuel vapor. In the course of cooling that is experienced by the [0020] fuel system 10, e.g., after the engine is turned off, a vacuum is naturally created by cooling the fuel vapor and air, such as in the headspace of the fuel tank 12 and in the fuel vapor collection canister 18. According to the present description, the existence of a vacuum at the first predetermined pressure level indicates that the integrity of the fuel system 10 is satisfactory. Thus, signaling 22 is used to indicate that there are no appreciable leaks of the fuel system 10. Subsequently, the vacuum relief 24 at a pressure level below the first predetermined pressure level protects the fuel tank 12, e.g., can prevent structural distortion as a result of stress caused by vacuum in the fuel system 10.
  • The pressure blow-[0021] off 26 allows venting of excess pressure, which may be due to fuel evaporation that can occur after the engine is turned-off, and thereby expedite the occurrence of vacuum generation that subsequently occurs during cooling. The pressure blow-off 26 allows air within the fuel system 10 to be released while fuel vapor is retained in the fuel vapor collection canister 18. Similarly, in the course of refueling the fuel tank 12, the pressure blow-off 26 allows air to exit the fuel tank 12 at a high rate of flow.
  • At least three advantages are achieved in accordance with a system including the fuel vapor [0022] pressure management apparatus 20. First, a leak detection diagnostic can be performed on fuel tanks of all sizes. This advantage is significant in that many previous systems for detecting leaks were not effective with known large volume fuel tanks, e.g., 100 gallons or more. Second, the fuel vapor pressure management apparatus 20 is compatible with a number of different types of the purge valves, including digital and proportional purge valves. And third, the fuel vapor pressure management apparatus 20 occupies a small volume, e.g., no more than 240 cubic centimeters. This advantage is significant in that many previous systems for detecting leaks were large and difficult to position in the confined spaces that are available under a vehicle's hood and body.
  • Referring to FIGS. 2-4, a preferred embodiment of the fuel vapor [0023] pressure management apparatus 20 includes a housing 30 that can be directly mounted to the body of the fuel vapor collection canister 18, such as by a bayonet style connection. Of course, there can be different styles of connection between the fuel vapor pressure management apparatus 20 and the body of the fuel vapor collection canister 18. Examples of different attachments include a threaded attachment, and an interlocking telescopic attachment. Alternatively, the fuel vapor collection canister 18 and the housing 30 can be bonded together (e.g., using an adhesive), or the body of the fuel vapor collection canister 18 and the housing 30 can be interconnected via an intermediate member such as a rigid pipe or a flexible hose.
  • The [0024] housing 30 defines an interior chamber 31 and includes a first port 36 and a second port 38. The first port 36 provides fluid communication between the fuel vapor collection canister 18 and the interior chamber 31. The second port 38 provides fluid communication, e.g., venting, between the interior chamber 31 and the atmosphere. A filter (not shown) can be interposed between the second port 38 and the atmosphere for reducing contaminants that could be drawn into the fuel vapor pressure management apparatus 20 during the vacuum relief 24 or during operation of the purge valve 16.
  • In general, it is desirable to minimize the number of pieces required to construct the [0025] housing 30 so as to reduce the number of potential leak points, e.g., between housing pieces, which must be sealed.
  • An advantage of the fuel vapor [0026] pressure management apparatus 20 is its compact size. The volume occupied by the fuel vapor pressure management apparatus 20, including the interior chamber 31, is less than many other known leak detection devices, which generally occupy more than 240 cubic centimeters. That is to say, the fuel vapor pressure management apparatus 20, from the first port 36 to the second port 38 and including the interior chamber 31, occupies less than 240 cubic centimeters. In particular, the fuel vapor pressure management apparatus 20 occupies a volume of less than 100 cubic centimeters. This size reduction over many known leak detection devices is significant given the limited availability of space in contemporary automobiles.
  • A pressure [0027] operable device 40 can separate the interior chamber 31 into a first portion 31 a and a second portion 31 b. The first portion 31 a is in fluid communication with the fuel vapor collection canister 18 through the first port 36, and the second portion 31 b is in fluid communication with the atmosphere through the second port 38.
  • The pressure [0028] operable device 40 includes a diaphragm 50 and a resilient element 70. During the signaling 22, the diaphragm 50 prevents fluid communication between the first and second ports 36,38 (FIG. 2). During the vacuum relief 24, the diaphragm 50 permits fluid flow from the second port 38 to the first port 36 (FIG. 3). During the pressure blow-off 26, the diaphragm 50 permits fluid flow from the first port 36 to the second port 38 (FIG. 4).
  • The pressure [0029] operable device 40, with its different arrangements of the diaphragm 50, may be considered to constitute a bi-directional check valve. That is to say, under a first set of conditions, the pressure operable device 40 permits fluid flow along a path in one direction, e.g., from the second port 38 to the first port 36, and under a second set of conditions, the same pressure operable device 40 permits fluid flow along the same path in the opposite direction, e.g., from the first port 36 to the second port 38.
  • Operation of the pressure [0030] operable device 40 is dependent on a pressure differential between the first and second ports 36,38. Preferably, all operations of the pressure operable device 40 are controlled by fluid pressure signals that act on one side, e.g., the first port 36 side, of the pressure operable device 40.
  • With additional reference to FIG. 5, the [0031] diaphragm 50 includes a central portion 52 movable along an axis A, a peripheral portion 58 fixed with respect to the housing 30, and an intermediate portion 60 coupling the central and peripheral portions 52,58.
  • The [0032] central portion 52 may be made of any metal (e.g., aluminum), polymer (e.g., nylon), or other material or combination of materials that is impervious to fuel vapor, is low density, is substantially rigid. The central portion 52 may also include a projection 54 and a seat 56. The projection 54 performs several functions, including cooperating with a portion of the housing 30 a to limit movement of the diaphragm 50 along the axis A. The seat 56 may cooperatively engage the resilient element 70.
  • The [0033] peripheral portion 58, which may include an enlarged bead 58 a, is secured to the housing 30, and may be secured between and seal two parts of the housing 30.
  • The [0034] intermediate portion 60 of the diaphragm 50 can be made of any material that is sufficiently elastic to permit many cycles of flexing between undeformed and deformed configurations. Preferably, the intermediate portion 60 is molded from rubber or a polymer, e.g., nitrites or fluorosilicones. More preferably, the seal has a stiffness of approximately 50 durometer (Shore A), and is self-lubricating or has an anti-friction coating, e.g., polytetrafluoroethylene. According to an exemplary embodiment, the diaphragm 50 is made of Santoprene 123-40. The diaphragm 50 may be formed by molding the peripheral and intermediate portions 54,56 onto the central portion 52.
  • The [0035] intermediate portion 60 of the diaphragm 50 can include a convolute 62 including a crest portion 62 a that couples a first sidewall portion 62 b and a second sidewall portion 62 c. A first root section 64 couples the first sidewall portion 62 b and the central portion 52 of the diaphragm 50. A second root section 66 couples the second sidewall portion 62 c and the peripheral portion 58 of the diaphragm 50.
  • During the [0036] signaling 22, the first and second root sections 64,66 sealingly engage one another. According to a preferred embodiment, at least one of the first and second root sections 64,66 may include mating features (a rim 66 a is shown in FIG. 5) to enhance the sealing engagement.
  • An [0037] opening 68 penetrates at least one of the crest 62 a and the first and second sidewalls 62 b,62 c, and provides a fluid passage through the diaphragm 50. During the signaling 22, fluid flow through the opening 68 in the diaphragm 50 is blocked by the sealing engagement of the first and second root sections 64,66. However, during the vacuum relief 24 and during the pressure blow-off 26, fluid can flow through the opening 68 and between the disengaged first and second roots sections 64,66.
  • According to a preferred embodiment, during the [0038] vacuum relief 24, vacuum in the fuel vapor collection canister 18 relative to atmospheric pressure causes deformation of the convolute 62 such that the crest 62 a is displaced toward the fuel vapor collection canister 18 and the first and second sidewalls 62 b,62 c are drawn apart from one another. Consequently, a first fluid flow occurs from the second port 38, between the disengaged first and second root sections 64,66, through the opening 68, and to the first port 36. During the pressure blow-off 26, pressure in the fuel vapor collection canister 18 relative to atmospheric pressure causes displacement of the central portion 52 away from the fuel vapor collection canister 18, which in turn deforms the convolute 62 such that the first and second sidewalls 62 b,62 c are drawn apart from one another. Consequently, a second fluid flow occurs from the first port 36, through the opening 68, between the disengaged first and second root sections 64,66, and to the second port 38.
  • According to a preferred embodiment, the [0039] opening 68 includes a plurality of apertures 68 a that are uniformly distributed around the convolute 62.
  • The [0040] resilient element 70 biases the central portion 52 of the diaphragm 50 towards the housing portion 30 a. The resilient element 70 can be a compression coil spring that is disposed between the diaphragm 50 and the housing 30. Preferably, such a coil spring is centered about the axis A.
  • Different embodiments of the [0041] resilient element 70 can include more than one coil spring, a leaf spring, or an elastic block. The different embodiments can also include various materials, e.g., metals or polymers. And the resilient element 70 can be disposed differently, e.g., a tension spring disposed between the housing part 30 a and the diaphragm 50.
  • It is also possible to use the weight of the [0042] diaphragm 50, in combination with the force of gravity, to urge the diaphragm 50 toward the housing portion 30 a. As such, the biasing force supplied by the resilient element 70 could be reduced or eliminated.
  • The construction of the [0043] resilient element 70, in particular the spring rate and length of the resilient member, can be provided so as to set the value of the pressure level at which the vacuum relief 24 occurs. According to a preferred embodiment, a calibrator 72 disposed between the resilient element 70 and the housing 30 can tune the biasing force provided by the resilient element 70. For example, a seat 74 receiving the resilient element 70 can be displaced relative to the housing 30 by a threaded adjuster 76.
  • According to a preferred embodiment of the present invention, the [0044] diaphragm 50 and the resilient element 70 are the only operating components for the fuel vapor pressure management apparatus 20. Thus, there are a number of advantages according to the present invention including the associated manufacturing and assembly cost savings resulting from the minimal number of components.
  • A [0045] switch 80 can perform the signaling 22. Preferably, movement of the diaphragm 50 along the axis A actuates the switch 80. The switch 80 can be fixed with respect to the housing portion 30 a, and movement of the diaphragm 50 closes or opens an electrical circuit in which the switch 80 is connected. In general, the switch 80 is selected so as to require a minimal actuation force, e.g., 50 grams or less. According to a preferred embodiment of the present invention, the resilient element 70 can apply a preload force to the switch 80.
  • Different embodiments of the [0046] switch 80 can include a dome switch or other contact type switches, a load cell transducer or other type of analog or digital transducers, magnetic proximity switches, piezoelectric contact sensors, or any other type of device capable of signaling that the diaphragm 50 has moved to a prescribed position or that the diaphragm 50 is exerting a prescribed force on the switch 80.
  • The [0047] signaling 22 occurs when vacuum at the first predetermined pressure level is present at the first port 36. During the signaling 22, the first and second root sections 64,66 cooperatively engage one another to prevent fluid communication between the first and second ports 36,38. At the first predetermined pressure level, e.g., a fraction of one inch of water vacuum relative to the atmospheric pressure, displacement of the diaphragm 50 will assume a nearly undeformed configuration, e.g., the diaphragm 50 retains substantially the same shape and all but the peripheral portion 58 may be displaced up to several thousandths of an inch in order to actuate the switch 80, thereby opening or closing an electrical circuit that can be monitored by an electronic control unit 82. As vacuum is released, i.e., the pressure at the first port 36 rises above the first predetermined pressure level, the elasticity of the diaphragm 50 causes the diaphragm 50 to return to its nominal configuration, e.g., unmoved and undeformed by relative pressure differentials between the first and second ports 36,38, thereby releasing the actuating force and resetting the switch 80.
  • At least four advantages are achieved in accordance with the operations performed by the fuel vapor [0048] pressure management apparatus 20. First, providing a leak detection diagnostic using vacuum monitoring during natural cooling, e.g., after the engine is turned off. Second, providing relief for vacuum below the first predetermined pressure level, and providing relief for positive pressure above the second predetermined pressure level. Third, vacuum relief provides fail-safe purging of the canister 18. And fourth, the relieving pressure 26 regulates the pressure in the fuel tank 12 during any situation in which the engine is turned off, thereby limiting the amount of positive pressure in the fuel tank 12 and allowing the cool-down vacuum effect to occur sooner.
  • It is desirable during leak detection testing of the [0049] fuel system 10 that the level at which a leak is detected to be just below the required limit set by the various government regulatory agencies. This maximizes the opportunity to locate, and then repair, a leak of the fuel system 10.
  • While the present invention has been disclosed with reference to certain preferred embodiments, numerous modifications, alterations, and changes to the described embodiments are possible without departing from the sphere and scope of the present invention, as defined in the appended claims. Accordingly, it is intended that the present invention not be limited to the described embodiments, but that it have the full scope defined by the language of the following claims, and equivalents thereof. [0050]

Claims (28)

What is claimed is:
1. A fuel vapor pressure management apparatus comprising:
a housing defining an interior chamber, the housing including first and second ports communicating with the interior chamber; and
a pressure operable device including a diaphragm separating the interior chamber into a first portion in fluid communication with the first port and a second portion in fluid communication with the second port, the diaphragm including a central portion movable along an axis, a peripheral portion fixed with respect to the housing, and an intermediate portion coupling the central and peripheral portions, a first arrangement of the pressure operable device occurs when there is a first negative pressure level at the first port relative to the second port and the diaphragm is in a nearly undeformed configuration, a second arrangement of the pressure operable device permits a first fluid flow from the second port to the first port when the diaphragm is in a first deformed configuration, and a third arrangement of the pressure operable device permits a second fluid flow from the first port to the second port when the diaphragm is in a second deformed configuration.
2. The fuel vapor pressure management apparatus according to claim 1, wherein the intermediate portion comprises:
a convolute including a crest coupling first and second sidewalls;
a first root section coupling the first sidewall and the central portion of the diaphragm; and
a second root section coupling the second sidewall and the peripheral portion of the diaphragm, the second root section sealingly engaging the first root section in the nearly undeformed configuration of the diaphragm, and the second root section disengaging the first root section in the first and second deformed configurations of the diaphragm.
3. The fuel vapor pressure management apparatus according to claim 2, wherein the intermediate portion further comprises:
an opening penetrating at least one of the crest and the first and second sidewalls, the first and second fluid flows passing through the opening in the first and second deformed configurations of the diaphragm.
4. The fuel vapor pressure management apparatus according to claim 3, wherein the opening comprises a plurality of apertures.
5. The fuel vapor pressure management apparatus according to claim 4, wherein the plurality of apertures are uniformly distributed about the axis.
6. The fuel vapor pressure management apparatus according to claim 1, wherein the pressure operable device comprises a resilient element biasing the diaphragm toward the nearly undeformed configuration.
7. The fuel vapor pressure management apparatus according to claim 6, wherein resilient element comprises a compression spring disposed in the second portion of the interior chamber.
8. The fuel vapor pressure management apparatus according to claim 7, wherein the compression spring comprises a coil spring surrounding the axis, the coil spring includes a first end contiguously engaging the housing and a second end contiguously engaging the central portion of the diaphragm.
9. The fuel vapor pressure management apparatus according to claim 8, wherein the housing comprises an adjuster contiguously engaging the first end of the coil spring, the adjuster calibrating a biasing force of the resilient element.
10. The fuel vapor pressure management apparatus according to claim 9, wherein the adjuster comprises a threaded element and a seat, the threaded element cooperatively engaging the housing, and the seat relatively rotatably engaging the threaded element and relatively fixedly engaging the first end of the coil spring.
11. The fuel vapor pressure management apparatus according to claim 6, wherein the pressure operable device comprises operating components consisting essentially of the diaphragm and the resilient element.
12. The fuel vapor pressure management apparatus according to claim 6, further comprising:
a stop limiting movement of the diaphragm due to the biasing of the resilient element, the diaphragm contiguously engaging the stop in the nearly undeformed configuration.
13. The fuel vapor pressure management apparatus according to claim 12, wherein the diaphragm contiguously engages the stop in the first deformed configuration.
14. The fuel vapor pressure management apparatus according to claim 13, wherein the diaphragm disengages the stop in the second deformed configuration.
15. The fuel vapor pressure management apparatus according to claim 1, wherein the second arrangement of the pressure operable device occurs when there is a second negative pressure level at the first port relative to the second port, and the second negative pressure level is less than the first negative pressure level.
16. The fuel vapor pressure management apparatus according to claim 1, wherein the third arrangement of the pressure operable device occurs when there is a positive pressure level at the first port relative to the second port.
17. The fuel vapor pressure management apparatus according to claim 1, further comprising:
a switch signaling the first arrangement of the pressure operable device when the first negative pressure level exists at the first port relative to the second port.
18. The fuel vapor pressure management apparatus according to claim 17, wherein the switch is disposed within the first portion of the interior chamber.
19. The fuel vapor pressure management apparatus according to claim 17, wherein the pressure operable device comprises a resilient element biasing the diaphragm toward the nearly undeformed configuration, the resilient element preloading the switch when there is a non-positive pressure level at the first port relative to the second port, and the non-positive pressure level is greater than the first negative pressure level.
20. The fuel vapor pressure management apparatus according to claim 1, wherein the central portion of the diaphragm is substantially rigid and the intermediate portion is relatively flexible with respect to the central portion.
21. A fuel vapor pressure management apparatus for a fuel system supplying fuel to an internal combustion engine, the fuel vapor pressure management apparatus performing leak detection on a headspace of the fuel system, performing excess negative pressure relief of the headspace, and performing excess positive pressure relief of the headspace, the fuel vapor pressure management apparatus comprising:
a diaphragm being deformable between a nearly undeformed configuration associated with the performing leak detection, a first deformed configuration associated with the performing excess negative pressure relief, and a second deformed configuration associated with the performing excess positive pressure relief, wherein:
a first fluid flow through the diaphragm occurs when the diaphragm is in the first deformed configuration;
a second fluid flow through the diaphragm occurs when the diaphragm is in the second deformed configuration, the second fluid flow being opposite to the first fluid flow; and
fluid flow through the fuel vapor pressure management apparatus is prevented by the diaphragm in the nearly undeformed configuration.
22. The fuel vapor pressure management apparatus according to claim 21, further comprising:
a switch being actuated by the diaphragm in the nearly undeformed configuration, the switch being actuated indicates satisfactory results of the performing leak detection.
23. The fuel vapor pressure management apparatus according to claim 21, further comprising:
a resilient element biasing the central portion of the diaphragm toward the nearly undeformed configuration.
24. A diaphragm that is deformable between a nearly undeformed configuration, a first deformed configuration, and a second deformed configuration, the diaphragm comprising:
a central portion;
a peripheral portion; and
an intermediate portion coupling the central and peripheral portions, the intermediate portion including:
a convolute including a crest coupling first and second sidewalls;
a first root section coupling the first sidewall and the central portion of the diaphragm;
a second root section coupling the second sidewall and the peripheral portion of the diaphragm, the second root section sealingly engaging the first root section in the nearly undeformed configuration of the diaphragm, and the second root section disengaging the first root section in the first and second deformed configurations of the diaphragm; and
an opening penetrating at least one of the crest and the first and second sidewalls, a first fluid flow passing through the opening in the first deformed configuration, and a second fluid flow passing through the opening in the second deformed configuration.
25. The diaphragm according to claim 24, wherein the opening comprises a plurality of apertures.
26. The diaphragm according to claim 24, wherein the first fluid flow is opposite to the second fluid flow.
27. The diaphragm according to claim 24, wherein positioning of the central portion with respect to the peripheral portion is maintained in the first deformed configuration.
28. The diaphragm according to claim 24, wherein the central portion is displaced relative to the peripheral portion in the second deformed configuration.
US10/794,083 2003-03-07 2004-03-08 Flow-through diaphragm for a fuel vapor pressure management apparatus Expired - Fee Related US6953027B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US10/794,083 US6953027B2 (en) 2003-03-07 2004-03-08 Flow-through diaphragm for a fuel vapor pressure management apparatus

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US45302103P 2003-03-07 2003-03-07
US10/794,083 US6953027B2 (en) 2003-03-07 2004-03-08 Flow-through diaphragm for a fuel vapor pressure management apparatus

Publications (2)

Publication Number Publication Date
US20040173262A1 true US20040173262A1 (en) 2004-09-09
US6953027B2 US6953027B2 (en) 2005-10-11

Family

ID=32930756

Family Applications (1)

Application Number Title Priority Date Filing Date
US10/794,083 Expired - Fee Related US6953027B2 (en) 2003-03-07 2004-03-08 Flow-through diaphragm for a fuel vapor pressure management apparatus

Country Status (1)

Country Link
US (1) US6953027B2 (en)

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080078650A1 (en) * 2006-09-28 2008-04-03 Donald Patrick Cox Oil-purifying device with oil diffusing assembly and high-surface-area structure
US20080223457A1 (en) * 2007-02-07 2008-09-18 Kobziar Danko A Bi-directional valve
US7444990B1 (en) 2007-12-12 2008-11-04 Robert Bosch Gmbh Fuel line check valve
US7441545B1 (en) 2007-12-12 2008-10-28 Robert Bosch Gmbh Fuel pressure relief valve
DE102009048476B3 (en) * 2009-10-07 2010-09-16 Gaplast Gmbh One-way valve for releasing liquid from container, has outer cap which is mounted at container neck, and outlet channel is provided for fluid, where valve body is made of elastic material, and is arranged between container and outer cap
DE102010009101A1 (en) * 2010-02-24 2011-08-25 GAPLAST GmbH, 82442 packaging
DE102010009102B4 (en) * 2010-02-24 2014-08-28 Gaplast Gmbh Double-walled squeeze bottle with valve in the airless system

Citations (62)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7473A (en) * 1850-07-02 Feeder
US7772A (en) * 1850-11-12 Horseshoe machinery
US24510A (en) * 1859-06-21 Island
US29425A (en) * 1860-07-31 Improvement in mowing-machines
US34015A (en) * 1861-12-24 Improvement in mode of securing carriage-wheel hubs to axles
US56771A (en) * 1866-07-31 Improvement in gearings for churns
US157655A (en) * 1874-12-08 Improvement in hose-nozzles
US322084A (en) * 1885-07-14 wilder
US2111813A (en) * 1936-06-19 1938-03-22 Standard Oil Co Vent valve
US2204706A (en) * 1939-04-24 1940-06-18 Dudley F Searle Remote controlled vacuum brake valve
US2318962A (en) * 1940-08-03 1943-05-11 Arthur L Parker Valve assembly
US2679946A (en) * 1951-05-14 1954-06-01 Stant Mfg Company Inc Gasoline tank cap with doubleacting valve
US3007526A (en) * 1958-06-04 1961-11-07 Jersey Prod Res Co Apparatus for performing operations in wells
US3084707A (en) * 1961-03-08 1963-04-09 And Continental Illinois Bank Exhaust valve
US3159176A (en) * 1962-12-07 1964-12-01 Vernay Laboratories Check-relief valve
US3413840A (en) * 1966-04-19 1968-12-03 Mcmullen John J Leak detection system
US3741232A (en) * 1968-12-16 1973-06-26 Eaton Yale & Towne Valve for evaporative loss control
US3749127A (en) * 1971-10-18 1973-07-31 Switch Co Fast acting,low pressure,two positioned valve
US3941149A (en) * 1974-11-11 1976-03-02 Baxter Laboratories, Inc. Valve
US4368366A (en) * 1980-01-23 1983-01-11 Aisin Seiki Kabushiki Kaisha Pneumatically operated device with valve and switch mechanisms
US4819607A (en) * 1987-10-09 1989-04-11 Borg-Warner Automotive, Inc. Vapor vent valve apparatus
US4842015A (en) * 1987-09-24 1989-06-27 Wabco Westinghouse Fahrzeugbremsen Gmbh Check valve
US4926825A (en) * 1987-12-07 1990-05-22 Honda Giken Kogyo K.K. (Honda Motor Co., Ltd. In English) Air-fuel ratio feedback control method for internal combustion engines
US4949695A (en) * 1988-08-10 1990-08-21 Toyota Jidosha Kabushiki Kaisha Device for detecting malfunction of fuel evaporative purge system
US4951701A (en) * 1989-07-17 1990-08-28 Vernay Laboratories, Inc. Combination air vent and overpressure valve
US4962744A (en) * 1988-08-29 1990-10-16 Toyota Jidosha Kabushiki Kaisha Device for detecting malfunction of fuel evaporative purge system
US5021071A (en) * 1990-03-14 1991-06-04 General Motors Corporation Vehicle fuel tank pressure control method
US5036823A (en) * 1990-08-17 1991-08-06 General Motors Corporation Combination overfill and tilt shutoff valve system for vehicle fuel tank
US5088466A (en) * 1990-07-06 1992-02-18 Mitsubishi Denki K.K. Evaporated fuel gas purging system
US5103854A (en) * 1990-01-22 1992-04-14 Vernay Laboratories, Inc. Low pressure check valve for artificial respiration devices
US5105789A (en) * 1990-03-22 1992-04-21 Nissan Motor Company, Limited Apparatus for checking failure in evaporated fuel purging unit
US5113834A (en) * 1990-05-31 1992-05-19 Nissan Motor Company, Limited Self-diagnosing fuel-purging system used for fuel processing system
US5116257A (en) * 1991-01-08 1992-05-26 Stant Inc. Tank venting control assembly
US5143035A (en) * 1990-10-15 1992-09-01 Toyota Jidosha Kabushiki Kaisha Apparatus for detecting malfunction in evaporated fuel purge system
US5146902A (en) * 1991-12-02 1992-09-15 Siemens Automotive Limited Positive pressure canister purge system integrity confirmation
US5150689A (en) * 1990-09-14 1992-09-29 Nissan Motor Co., Ltd. Fuel tank vapor control system with means for warning of malfunction of canister
US5158054A (en) * 1990-10-15 1992-10-27 Toyota Jidosha Kabushiki Kaisha Malfunction detection apparatus for detecting malfunction in evaporated fuel purge system
US5169393A (en) * 1990-09-04 1992-12-08 Robert Moorehead Two-way outdwelling slit valving of medical liquid flow through a cannula and methods
US5191870A (en) * 1991-03-28 1993-03-09 Siemens Automotive Limited Diagnostic system for canister purge system
US5203872A (en) * 1991-03-21 1993-04-20 Borg-Warner Automotive Electronic & Mechanical Systems Corporation Secondary air control and check valves
US5224511A (en) * 1987-04-25 1993-07-06 Babcock Sempell Ag Spring-loaded safety valve
US5253629A (en) * 1992-02-03 1993-10-19 General Motors Corporation Flow sensor for evaporative control system
US5263462A (en) * 1992-10-29 1993-11-23 General Motors Corporation System and method for detecting leaks in a vapor handling system
US5295472A (en) * 1992-01-06 1994-03-22 Toyota Jidosha Kabushiki Kaisha Apparatus for detecting malfunction in evaporated fuel purge system used in internal combustion engine
US5373822A (en) * 1991-09-16 1994-12-20 Ford Motor Company Hydrocarbon vapor control system for an internal combustion engine
US5449018A (en) * 1994-01-04 1995-09-12 Stant Manufacturing Inc. Flow control valve
US5474050A (en) * 1995-01-13 1995-12-12 Siemens Electric Limited Leak detection pump with integral vent seal
US5524662A (en) * 1990-01-25 1996-06-11 G.T. Products, Inc. Fuel tank vent system and diaphragm valve for such system
US5603349A (en) * 1992-01-17 1997-02-18 Stant Manufacturing Inc. Tank venting system
US5863025A (en) * 1995-03-27 1999-01-26 Kyosan Denki Co., Ltd. Evaporator control valve provided with a solenoid for use in diagnosing trouble
US5911209A (en) * 1996-11-05 1999-06-15 Nissan Motor Co., Ltd. Fuel vapor processor diagnostic device
US6058970A (en) * 1997-07-18 2000-05-09 Kyosan Denki Co., Ltd. Refueling vapor recovery system with differential pressure valve
US6105608A (en) * 1995-10-12 2000-08-22 A.R.I. Kfar Charuv Gas purge valve
US6289916B1 (en) * 1998-03-27 2001-09-18 Compagnie De Materiel Et D'equipements Techniques C.O.M.E.T. Ventilating device for motor vehicle fuel tank
US6328021B1 (en) * 1999-11-19 2001-12-11 Siemens Canada Limited Diaphragm for an integrated pressure management apparatus
US6450152B1 (en) * 2001-06-15 2002-09-17 Siemens Automotive Inc. Low-profile fuel tank isolation valve
US6460566B1 (en) * 1999-11-19 2002-10-08 Siemens Canada Limited Integrated pressure management system for a fuel system
US6478045B1 (en) * 1999-11-19 2002-11-12 Siemens Canada Limited Solenoid for an integrated pressure management apparatus
US6502560B1 (en) * 1999-11-19 2003-01-07 Siemens Canada Limited Integrated pressure management apparatus having electronic control circuit
US6564780B2 (en) * 2000-06-23 2003-05-20 Toyota Jidosha Kabushiki Kaisha Diagnostic apparatus and method for fuel vapor purge system
US6662827B1 (en) * 2002-07-15 2003-12-16 Sonoco Development, Inc. Overpressure relief valve for packaging container
US6668876B2 (en) * 2001-06-14 2003-12-30 Siemens Vdo Automotive, Incorporated Method for fuel vapor pressure management

Patent Citations (63)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7473A (en) * 1850-07-02 Feeder
US7772A (en) * 1850-11-12 Horseshoe machinery
US24510A (en) * 1859-06-21 Island
US29425A (en) * 1860-07-31 Improvement in mowing-machines
US34015A (en) * 1861-12-24 Improvement in mode of securing carriage-wheel hubs to axles
US56771A (en) * 1866-07-31 Improvement in gearings for churns
US157655A (en) * 1874-12-08 Improvement in hose-nozzles
US322084A (en) * 1885-07-14 wilder
US2111813A (en) * 1936-06-19 1938-03-22 Standard Oil Co Vent valve
US2204706A (en) * 1939-04-24 1940-06-18 Dudley F Searle Remote controlled vacuum brake valve
US2318962A (en) * 1940-08-03 1943-05-11 Arthur L Parker Valve assembly
US2679946A (en) * 1951-05-14 1954-06-01 Stant Mfg Company Inc Gasoline tank cap with doubleacting valve
US3007526A (en) * 1958-06-04 1961-11-07 Jersey Prod Res Co Apparatus for performing operations in wells
US3084707A (en) * 1961-03-08 1963-04-09 And Continental Illinois Bank Exhaust valve
US3159176A (en) * 1962-12-07 1964-12-01 Vernay Laboratories Check-relief valve
US3413840A (en) * 1966-04-19 1968-12-03 Mcmullen John J Leak detection system
US3741232A (en) * 1968-12-16 1973-06-26 Eaton Yale & Towne Valve for evaporative loss control
US3749127A (en) * 1971-10-18 1973-07-31 Switch Co Fast acting,low pressure,two positioned valve
US3941149A (en) * 1974-11-11 1976-03-02 Baxter Laboratories, Inc. Valve
US4368366A (en) * 1980-01-23 1983-01-11 Aisin Seiki Kabushiki Kaisha Pneumatically operated device with valve and switch mechanisms
US5224511A (en) * 1987-04-25 1993-07-06 Babcock Sempell Ag Spring-loaded safety valve
US4842015A (en) * 1987-09-24 1989-06-27 Wabco Westinghouse Fahrzeugbremsen Gmbh Check valve
US4819607A (en) * 1987-10-09 1989-04-11 Borg-Warner Automotive, Inc. Vapor vent valve apparatus
US4926825A (en) * 1987-12-07 1990-05-22 Honda Giken Kogyo K.K. (Honda Motor Co., Ltd. In English) Air-fuel ratio feedback control method for internal combustion engines
US4949695A (en) * 1988-08-10 1990-08-21 Toyota Jidosha Kabushiki Kaisha Device for detecting malfunction of fuel evaporative purge system
US4962744A (en) * 1988-08-29 1990-10-16 Toyota Jidosha Kabushiki Kaisha Device for detecting malfunction of fuel evaporative purge system
US4951701A (en) * 1989-07-17 1990-08-28 Vernay Laboratories, Inc. Combination air vent and overpressure valve
US5103854A (en) * 1990-01-22 1992-04-14 Vernay Laboratories, Inc. Low pressure check valve for artificial respiration devices
US5524662A (en) * 1990-01-25 1996-06-11 G.T. Products, Inc. Fuel tank vent system and diaphragm valve for such system
US5021071A (en) * 1990-03-14 1991-06-04 General Motors Corporation Vehicle fuel tank pressure control method
US5105789A (en) * 1990-03-22 1992-04-21 Nissan Motor Company, Limited Apparatus for checking failure in evaporated fuel purging unit
US5113834A (en) * 1990-05-31 1992-05-19 Nissan Motor Company, Limited Self-diagnosing fuel-purging system used for fuel processing system
US5088466A (en) * 1990-07-06 1992-02-18 Mitsubishi Denki K.K. Evaporated fuel gas purging system
US5036823A (en) * 1990-08-17 1991-08-06 General Motors Corporation Combination overfill and tilt shutoff valve system for vehicle fuel tank
US5169393A (en) * 1990-09-04 1992-12-08 Robert Moorehead Two-way outdwelling slit valving of medical liquid flow through a cannula and methods
US5150689A (en) * 1990-09-14 1992-09-29 Nissan Motor Co., Ltd. Fuel tank vapor control system with means for warning of malfunction of canister
US5143035A (en) * 1990-10-15 1992-09-01 Toyota Jidosha Kabushiki Kaisha Apparatus for detecting malfunction in evaporated fuel purge system
US5158054A (en) * 1990-10-15 1992-10-27 Toyota Jidosha Kabushiki Kaisha Malfunction detection apparatus for detecting malfunction in evaporated fuel purge system
US5116257A (en) * 1991-01-08 1992-05-26 Stant Inc. Tank venting control assembly
US5203872A (en) * 1991-03-21 1993-04-20 Borg-Warner Automotive Electronic & Mechanical Systems Corporation Secondary air control and check valves
US5191870A (en) * 1991-03-28 1993-03-09 Siemens Automotive Limited Diagnostic system for canister purge system
US5373822A (en) * 1991-09-16 1994-12-20 Ford Motor Company Hydrocarbon vapor control system for an internal combustion engine
US5146902A (en) * 1991-12-02 1992-09-15 Siemens Automotive Limited Positive pressure canister purge system integrity confirmation
US5295472A (en) * 1992-01-06 1994-03-22 Toyota Jidosha Kabushiki Kaisha Apparatus for detecting malfunction in evaporated fuel purge system used in internal combustion engine
US5603349A (en) * 1992-01-17 1997-02-18 Stant Manufacturing Inc. Tank venting system
US5253629A (en) * 1992-02-03 1993-10-19 General Motors Corporation Flow sensor for evaporative control system
US5263462A (en) * 1992-10-29 1993-11-23 General Motors Corporation System and method for detecting leaks in a vapor handling system
US5449018A (en) * 1994-01-04 1995-09-12 Stant Manufacturing Inc. Flow control valve
US5474050A (en) * 1995-01-13 1995-12-12 Siemens Electric Limited Leak detection pump with integral vent seal
US5863025A (en) * 1995-03-27 1999-01-26 Kyosan Denki Co., Ltd. Evaporator control valve provided with a solenoid for use in diagnosing trouble
US6105608A (en) * 1995-10-12 2000-08-22 A.R.I. Kfar Charuv Gas purge valve
US5911209A (en) * 1996-11-05 1999-06-15 Nissan Motor Co., Ltd. Fuel vapor processor diagnostic device
US6058970A (en) * 1997-07-18 2000-05-09 Kyosan Denki Co., Ltd. Refueling vapor recovery system with differential pressure valve
US6289916B1 (en) * 1998-03-27 2001-09-18 Compagnie De Materiel Et D'equipements Techniques C.O.M.E.T. Ventilating device for motor vehicle fuel tank
US6460566B1 (en) * 1999-11-19 2002-10-08 Siemens Canada Limited Integrated pressure management system for a fuel system
US6328021B1 (en) * 1999-11-19 2001-12-11 Siemens Canada Limited Diaphragm for an integrated pressure management apparatus
US6478045B1 (en) * 1999-11-19 2002-11-12 Siemens Canada Limited Solenoid for an integrated pressure management apparatus
US6502560B1 (en) * 1999-11-19 2003-01-07 Siemens Canada Limited Integrated pressure management apparatus having electronic control circuit
US6564780B2 (en) * 2000-06-23 2003-05-20 Toyota Jidosha Kabushiki Kaisha Diagnostic apparatus and method for fuel vapor purge system
US6668876B2 (en) * 2001-06-14 2003-12-30 Siemens Vdo Automotive, Incorporated Method for fuel vapor pressure management
US6772739B2 (en) * 2001-06-14 2004-08-10 Siemens Vdo Automotive, Incorporated Method of managing fuel vapor pressure in a fuel system
US6450152B1 (en) * 2001-06-15 2002-09-17 Siemens Automotive Inc. Low-profile fuel tank isolation valve
US6662827B1 (en) * 2002-07-15 2003-12-16 Sonoco Development, Inc. Overpressure relief valve for packaging container

Also Published As

Publication number Publication date
US6953027B2 (en) 2005-10-11

Similar Documents

Publication Publication Date Title
US6820642B2 (en) Apparatus for fuel vapor pressure management
US6953027B2 (en) Flow-through diaphragm for a fuel vapor pressure management apparatus
US7011077B2 (en) Fuel system and method for managing fuel vapor pressure with a flow-through diaphragm
US7028674B2 (en) Flow sensor integrated with leak detection for purge valve diagnostic
US7004014B2 (en) Apparatus, system and method of establishing a test threshold for a fuel vapor leak detection system
US7121267B2 (en) Poppet for an integrated pressure management apparatus and fuel system and method of minimizing resonance
US6986357B2 (en) Method of designing a fuel vapor pressure management apparatus
US20030034015A1 (en) Apparatus and method for calibrating a fuel vapor pressure management apparatus
US7117880B2 (en) Apparatus and method of changing printed circuit boards in a fuel vapor pressure management apparatus
US20040237944A1 (en) Flow sensor for purge valve diagnostic
EP1543236B1 (en) Rationality testing for a fuel vapor pressure management apparatus
US20040237637A1 (en) Flow sensor for purge valve diagnostic
US6470908B1 (en) Pressure operable device for an integrated pressure management apparatus
US20050005689A1 (en) Flow sensor integrated with leak detection for purge valve diagnostic
US6948355B1 (en) In-use rate based calculation for a fuel vapor pressure management apparatus

Legal Events

Date Code Title Description
AS Assignment

Owner name: SIEMENS VDO AUTOMOTIVE CORPORATION, MICHIGAN

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:VEINOTTE, ANDRE;REEL/FRAME:015069/0529

Effective date: 20040308

AS Assignment

Owner name: SIEMENS VDO AUTOMOTIVE INC., CANADA

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:VEINOTTE, ANDRE;REEL/FRAME:016351/0994

Effective date: 20050214

FEPP Fee payment procedure

Free format text: PAYOR NUMBER ASSIGNED (ORIGINAL EVENT CODE: ASPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

FPAY Fee payment

Year of fee payment: 4

REMI Maintenance fee reminder mailed
LAPS Lapse for failure to pay maintenance fees
STCH Information on status: patent discontinuation

Free format text: PATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362

FP Lapsed due to failure to pay maintenance fee

Effective date: 20131011